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Conditional Deletion of Sost in MSC-Derived Lineages Identifies Specific Cell-Type Contributions to Bone Mass and
Cristal S Yee1,2, Jennifer O Manilay2, Jiun C Chang1,2
1Physical and Life Sciences Directorate, Lawrence Livermore National Laboratories, Livermore, CA, USA.
Abstract:
Sclerostin (Sost) is a negative regulator of bone formation and blocking its function via antibodies has shown great therapeutic promise by increasing both bone mass in humans and animal models. Sclerostin deletion in Sost KO mice (Sost-/- ) causes high bone mass (HBM) similar to sclerosteosis patients. Sost-/- mice have been shown to display an up to 300% increase in bone volume/total volume (BV/TV), relative to age-matched controls. It has been postulated that the main source of skeletal sclerostin is the osteocyte. To understand the cell-type specific contributions to the HBM phenotype described in Sost-/- mice, as well as to address the endocrine and paracrine mode of action of sclerostin, we examined the skeletal phenotypes of conditional Sost loss-of-function (SostiCOIN/iCOIN ) mice with specific deletions in (1) the limb mesenchyme (Prx1-Cre; targets osteoprogenitors and their progeny); (2) midstage osteoblasts and their progenitors (Col1-Cre); (3) mature osteocytes (Dmp1-Cre); and (4) hypertrophic chondrocytes and their progenitors (ColX-Cre). All conditional alleles resulted in significant increases in bone mass in trabecular bone in both the femur and lumbar vertebrae, but only Prx1-Cre deletion fully recapitulated the amplitude of the HBM phenotype in the appendicular skeleton and the B-cell defect described in the global KO. Despite WT expression of Sost in the axial skeleton of Prx1-Cre deleted mice, these mice also had a significant increase in bone mass in the vertebrae, but the sclerostin released in circulation by the axial skeleton did not affect bone parameters in the appendicular skeleton. Also, both Col1 and Dmp1 deletion resulted in a similar 80% significant increase in trabecular bone mass, but only Col1 and Prx1 deletion resulted in a significant increase in cortical thickness. We conclude that several cell types within the Prx1-osteoprogenitor-derived lineages contribute significant amounts of sclerostin protein to the paracrine pool of Sost in bone. © 2018 The Authors. Journal of Bone and Mineral Research Published by Wiley Periodicals, Inc.
Insights
Blocking sclerostin (Sost) increases bone mass. This study identified specific cell types in bone that produce Sost, revealing their roles in high bone mass phenotypes and therapeutic potential.
Area of Science:
- Bone Biology
- Endocrinology
- Genetics
Background:
- Sclerostin (Sost) inhibits bone formation, making it a therapeutic target.
- Blocking Sost increases bone mass in humans and animal models.
- Sclerostin deletion in Sost knockout mice causes high bone mass (HBM).
Purpose of the Study:
- Investigate cell-type specific contributions to HBM in Sost knockout mice.
- Determine the endocrine and paracrine roles of sclerostin.
- Analyze skeletal phenotypes of conditional Sost loss-of-function models.
Main Methods:
- Generated conditional Sost loss-of-function mice using Prx1-Cre, Col1-Cre, Dmp1-Cre, and ColX-Cre.
- Examined trabecular and cortical bone mass in femurs and lumbar vertebrae.
- Assessed B-cell defects and circulating sclerostin levels.
Main Results:
- Conditional Sost deletion in Prx1-Cre, Col1-Cre, and Dmp1-Cre mice increased trabecular bone mass.
- Prx1-Cre deletion fully recapitulated the HBM phenotype and B-cell defect of global knockout mice.
- Col1 and Prx1 deletions significantly increased cortical thickness.
Conclusions:
- Multiple cell types within Prx1-osteoprogenitor lineages contribute to the bone Sost pool.
- Sclerostin produced in the axial skeleton does not systemically affect appendicular bone parameters.
- Targeting Sost-producing cells offers potential for bone anabolic therapies.
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